F. Meli et al., ELECTROCHEMICAL AND SURFACE-PROPERTIES OF IRON-CONTAINING AB(5)-TYPE ALLOYS, Journal of alloys and compounds, 231(1-2), 1995, pp. 639-644
LaNi5-type metal hydride electrodes can attain a long cycle life in re
chargeable batteries by partial substitution of Ni by expensive Co. We
have investigated the surface and electrochemical properties of (La,M
m)Ni-5-x(Fe,Al,Mn,Cu)(x)-type alloys with regard to battery applicatio
ns. We found that partial substitution of nickel by iron did not incre
ase the durability of LaNi5. The initial capacity of LaNi4.5Fe0.5 was
320 mA h g(-1), while after 200 charge-discharge cycles it decreased t
o 130 mA h g(-1). With the combined substitution of iron and aluminium
the durability increased. A more dramatic improvement to the stable a
lloys was attained for mischmetal- based alloys (e.g. MmNi(3.6)Fe(0.7)
Al(0.3)Mn(0.4)). Deep discharges and cycling at 40 degrees C caused on
ly a minor capacity decrease for these alloys. Surface analysis using
X-ray photoelectron spectroscopy (XPS) of LaNi4Fe and LaNi4.2Fe0.5Al0.
3 showed significant changes in the surface composition of electrochem
ically cycled alloys. The surface changed from being lanthanum oxide r
ich to nickel rich. No aluminium or iron enrichment was found in the c
ycled alloys. The content of metallic nickel was lower than observed p
reviously on the surface of LaNi1-xSix alloys. LaNi4.2Fe0.5Al0.3 with
good cyclic stability also showed a higher metallic Ni content in the
subsurface layer. For all analysed samples, lanthanum was oxidized alm
ost throughout the entire sputtering depth, whereas nickel became meta
llic at a depth of 0 to 60 Angstrom and iron at a depth of 50 to 400 A
ngstrom.